1. Academic Validation
  2. Degradation of a New Herbicide Florpyrauxifen-Benzyl in Water: Kinetics, Various Influencing Factors and Its Reaction Mechanisms

Degradation of a New Herbicide Florpyrauxifen-Benzyl in Water: Kinetics, Various Influencing Factors and Its Reaction Mechanisms

  • Int J Mol Sci. 2023 Jun 23;24(13):10521. doi: 10.3390/ijms241310521.
Rendan Zhou 1 Zemin Dong 1 2 Long Wang 1 Wenwen Zhou 3 Weina Zhao 2 Tianqi Wu 1 Hailong Chang 1 Wei Lin 1 Baotong Li 1
Affiliations

Affiliations

  • 1 College of Land Resources and Environment, Jiangxi Agricultural University, Nanchang 330045, China.
  • 2 Jiangxi Agricultural Technology Extension Center, Nanchang 330046, China.
  • 3 College of Food Sciences, Jiangxi Agricultural University, Nanchang 330045, China.
Abstract

Florpyrauxifen-benzyl is a novel Herbicide used to control weeds in paddy fields. To clarify and evaluate its hydrolytic behavior and safety in water environments, its hydrolytic characteristics were investigated under varying temperatures, pH values, initial mass concentrations and water types, as well as the effects of 40 environmental factors such as microplastics (MPs) and disposable face masks (DFMs). Meanwhile, hydrolytic products were identified by UPLC-QTOF-MS/MS, and its hydrolytic pathways were proposed. The effects of MPs and DFMs on hydrolytic products and pathways were also investigated. The results showed that hydrolysis of florpyrauxifen-benzyl was a spontaneous process driven by endothermic, base catalysis and activation entropy increase and conformed to the first-order kinetics. The temperature had an obvious effect on hydrolysis rate under alkaline condition, the hydrolysis reaction conformed to Arrhenius formula, and activation enthalpy, activation entropy, and Gibbs free energy were negatively correlated with temperature. Most of environmental factors promoted hydrolysis of florpyrauxifen-benzyl, especially the cetyltrimethyl ammonium bromide (CTAB). The hydrolysis mechanism was ester hydrolysis reaction with a main product of florpyrauxifen. The MPs and DFMs did not affect the hydrolytic mechanisms but the hydrolysis rate. The results are crucial for illustrating and assessing the environmental fate and risks of florpyrauxifen-benzyl.

Keywords

disposable face masks (DFMs); environmental behavior; florpyrauxifen-benzyl; hydrolysis; microplastics (MPs); pathway.

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